EP1848323B1 - Estimateur de bolus pour systeme de perfusion en boucle semi-fermee - Google Patents

Estimateur de bolus pour systeme de perfusion en boucle semi-fermee Download PDF

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Publication number
EP1848323B1
EP1848323B1 EP06719947.1A EP06719947A EP1848323B1 EP 1848323 B1 EP1848323 B1 EP 1848323B1 EP 06719947 A EP06719947 A EP 06719947A EP 1848323 B1 EP1848323 B1 EP 1848323B1
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Prior art keywords
blood glucose
patient
insulin
sensor
bgc
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German (de)
English (en)
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EP1848323A1 (fr
Inventor
Andy C. Hayes
John J. Mastrototaro
Sheldon B. Moberg
John C. Mueller, Jr.
Bud Clark
Mike Charles Vallet Tolle
Gary L. Williams
Bihong Wu
Garry M. Steil
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Medtronic Minimed Inc
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Medtronic Minimed Inc
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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/72Signal processing specially adapted for physiological signals or for diagnostic purposes
    • A61B5/7235Details of waveform analysis
    • A61B5/7239Details of waveform analysis using differentiation including higher order derivatives
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/145Measuring characteristics of blood in vivo, e.g. gas concentration or pH-value ; Measuring characteristics of body fluids or tissues, e.g. interstitial fluid or cerebral tissue
    • A61B5/14532Measuring characteristics of blood in vivo, e.g. gas concentration or pH-value ; Measuring characteristics of body fluids or tissues, e.g. interstitial fluid or cerebral tissue for measuring glucose, e.g. by tissue impedance measurement
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M5/00Devices for bringing media into the body in a subcutaneous, intra-vascular or intramuscular way; Accessories therefor, e.g. filling or cleaning devices, arm-rests
    • A61M5/14Infusion devices, e.g. infusing by gravity; Blood infusion; Accessories therefor
    • A61M5/168Means for controlling media flow to the body or for metering media to the body, e.g. drip meters, counters ; Monitoring media flow to the body
    • A61M5/172Means for controlling media flow to the body or for metering media to the body, e.g. drip meters, counters ; Monitoring media flow to the body electrical or electronic
    • A61M5/1723Means for controlling media flow to the body or for metering media to the body, e.g. drip meters, counters ; Monitoring media flow to the body electrical or electronic using feedback of body parameters, e.g. blood-sugar, pressure
    • GPHYSICS
    • G16INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR SPECIFIC APPLICATION FIELDS
    • G16HHEALTHCARE INFORMATICS, i.e. INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR THE HANDLING OR PROCESSING OF MEDICAL OR HEALTHCARE DATA
    • G16H20/00ICT specially adapted for therapies or health-improving plans, e.g. for handling prescriptions, for steering therapy or for monitoring patient compliance
    • G16H20/10ICT specially adapted for therapies or health-improving plans, e.g. for handling prescriptions, for steering therapy or for monitoring patient compliance relating to drugs or medications, e.g. for ensuring correct administration to patients
    • G16H20/17ICT specially adapted for therapies or health-improving plans, e.g. for handling prescriptions, for steering therapy or for monitoring patient compliance relating to drugs or medications, e.g. for ensuring correct administration to patients delivered via infusion or injection
    • GPHYSICS
    • G16INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR SPECIFIC APPLICATION FIELDS
    • G16ZINFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR SPECIFIC APPLICATION FIELDS, NOT OTHERWISE PROVIDED FOR
    • G16Z99/00Subject matter not provided for in other main groups of this subclass
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M5/00Devices for bringing media into the body in a subcutaneous, intra-vascular or intramuscular way; Accessories therefor, e.g. filling or cleaning devices, arm-rests
    • A61M5/14Infusion devices, e.g. infusing by gravity; Blood infusion; Accessories therefor
    • A61M5/142Pressure infusion, e.g. using pumps
    • A61M2005/14208Pressure infusion, e.g. using pumps with a programmable infusion control system, characterised by the infusion program
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M2205/00General characteristics of the apparatus
    • A61M2205/18General characteristics of the apparatus with alarm
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M2205/00General characteristics of the apparatus
    • A61M2205/35Communication
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M2230/00Measuring parameters of the user
    • A61M2230/20Blood composition characteristics
    • A61M2230/201Glucose concentration
    • GPHYSICS
    • G16INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR SPECIFIC APPLICATION FIELDS
    • G16HHEALTHCARE INFORMATICS, i.e. INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR THE HANDLING OR PROCESSING OF MEDICAL OR HEALTHCARE DATA
    • G16H40/00ICT specially adapted for the management or administration of healthcare resources or facilities; ICT specially adapted for the management or operation of medical equipment or devices
    • G16H40/60ICT specially adapted for the management or administration of healthcare resources or facilities; ICT specially adapted for the management or operation of medical equipment or devices for the operation of medical equipment or devices
    • G16H40/63ICT specially adapted for the management or administration of healthcare resources or facilities; ICT specially adapted for the management or operation of medical equipment or devices for the operation of medical equipment or devices for local operation
    • GPHYSICS
    • G16INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR SPECIFIC APPLICATION FIELDS
    • G16HHEALTHCARE INFORMATICS, i.e. INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR THE HANDLING OR PROCESSING OF MEDICAL OR HEALTHCARE DATA
    • G16H50/00ICT specially adapted for medical diagnosis, medical simulation or medical data mining; ICT specially adapted for detecting, monitoring or modelling epidemics or pandemics
    • G16H50/50ICT specially adapted for medical diagnosis, medical simulation or medical data mining; ICT specially adapted for detecting, monitoring or modelling epidemics or pandemics for simulation or modelling of medical disorders

Definitions

  • Embodiments of the present invention relate to semi-closed loop drug delivery systems, and more specifically to systems for controlling the infusion rate of insulin, based on continuously monitored body glucose levels.
  • the pancreas of a normal healthy person produces and releases insulin into the blood stream in response to elevated blood plasma glucose levels.
  • Beta cells which reside in the pancreas, produce and secrete the insulin into the blood stream, as it is needed.
  • ⁇ -cells become incapacitated or die, a condition known as Type I diabetes mellitus results (or in some cases when ⁇ -cells produce insufficient quantities of insulin, Type II diabetes results), then insulin must be provided to the body from another source.
  • infusion pump therapy has been increasing, especially for delivering insulin for diabetics.
  • external infusion pumps are worn on a belt, in a pocket, or the like, and deliver insulin into the body via an infusion tube with a percutaneous needle or a cannula placed in the subcutaneous tissue.
  • infusion pump therapy As of 1995, less than 5% of Type I diabetics in the United States were using infusion pump therapy.
  • Presently over 12% of the more than 900,000 Type I diabetics in the U.S. are using infusion pump therapy.
  • the percentage of Type I diabetics that use an infusion pump is growing at an absolute rate of over 2% each year.
  • the number of Type I diabetics is growing at 3% or more per year.
  • growing numbers of insulin using Type II diabetics are also using infusion pumps.
  • Infusion apparatus is known from WO 03/006091 which measures a patient's blood. Sugar level and calculates the patient's insulin requirement. The calculation adds an insulin requirement based on the measured sugar level to an offset amount and to an amount based on the derivative of the blood sugar level.
  • an infusion system is for infusing a fluid into the body of a patient.
  • the infusion system includes at least one sensor for monitoring blood glucose concentration of the patient and an infusion device for delivering fluid to the patient.
  • the sensor produces at least one sensor signal input.
  • the infusion device uses the at least one sensor signal input and a derivative predicted algorithm to determine future blood glucose levels.
  • the infusion device delivers fluid to the patient when future blood glucose levels are in a patient's predefined target range.
  • the infusion device is capable of suspending and resuming fluid delivery based on future blood glucose levels and a patient's predefined low shutoff threshold.
  • the infusion device suspends fluid delivery when a future blood glucose level falls below the predefined low shutoff threshold.
  • the infusion device resumes fluid delivery when a future blood glucose level is above the predefined low shutoff threshold.
  • the predefined low shutoff threshold is always above the infusion system's lowest shutoff threshold.
  • the infused fluid is insulin and the infusion system includes alarm based capabilities to provide alerts to the patient.
  • the patient selects at least one alarm to activate, and the at least one alarm includes an audible alarm for providing audible alerts, a vibration alarm for providing tactile alert, and a visual alarm for providing visual alerts.
  • an infusion system is for infusing a fluid into the body of a patient.
  • the infusion system includes a sensor system that includes a sensor for monitoring blood glucose concentration of a patient, and produces at least one sensor signal, which is representative of the blood glucose concentration of the patient.
  • the at least one sensor signal is used to generate at least one sensor signal input.
  • the infusion system also includes a controller, which uses the at least one sensor signal input to determine at least one sensor-derived blood glucose trend.
  • the at least one sensor-derived blood glucose trend is used to determine blood glucose levels at a predetermined time in the future.
  • the infusion system also includes a delivery system that infuses a fluid into the patient.
  • operation of the delivery system is affected by commands from the controller and the patient and, in other embodiments, the controller suspends fluid delivery if the at least one sensor-derived trend yields at least one blood glucose level reading that is below a predefined low shutoff threshold. In particular embodiments, the controller resumes delivery of the fluid when the at least one sensor-derived trend yields at least one blood glucose level reading that is above the predefined low shutoff threshold. In other embodiments, the predefined low shutoff threshold is always above the infusion system's lowest shutoff threshold. In other additional embodiments, the controller uses a derivative predicted algorithm to determine the at least one sensor-derived blood glucose trend. In some embodiments, the infused fluid is insulin. In particular embodiments, the infusion system also includes an alarm to provide alerts to the patient. In additional embodiments, the patient selects at least one alarm to activate. In other embodiments, the at least one alarm includes an audible alarm for providing audible alerts, a vibration alarm for providing tactile alert, and a visual alarm for providing visual alerts.
  • a method is for predicting blood glucose concentration of a patient.
  • the method first measures current blood glucose concentration using a sensor.
  • the sensor yields at least one sensor signal input which is representative of the current blood glucose concentration.
  • the method inputs the at least one sensor signal input to a derivative predicted algorithm.
  • the method determines the future blood glucose concentration using the derivative predicted algorithm.
  • the present invention is embodied in a semi-closed loop infusion system for assisting in the regulation of the rate of fluid infused into a body of a patient, based on feedback from an analyte concentration measurement taken from the body using a sensor, in addition to patient programming.
  • an improved algorithm may be used that suggests infusion dosage, or bolus amounts, based on particular trends of sensor-derived body characteristics. For example, in the case of diabetic patients, when sensor-derived blood glucose levels are trending down, the semi-closed loop algorithm may recommend less insulin intake. If sensor-derived blood glucose levels are trending up, the system may recommend more insulin intake. Examples of different bolus types and how to program and/or deliver a bolus can be found in U.S. Patent No.
  • Embodiments of the invention may be employed in various infusion environments including, but not limited to a biological implant environment. Other environments include, but are not limited to external infusion devices, pumps, or the like. Fluids that may be infused include, but are not limited to insulin formulations and other formulations having other pharmacological properties. As illustrated in FIGS. 15 and 16 , embodiments of an external infusion device 10 may include an optional remote RF programmer 12, a bolus capability 14 and/or an alarm 16. The RF programmer 12 and bolus capability 14 communicate with a processor (controller) 18 contained in a housing 20 of the external infusion device 10.
  • a processor controller
  • the processor (controller) 18 is used to run programs and control the external infusion device 10, and is connected to an internal memory device 22 that stores programs, historical data, user defined information and parameters.
  • the memory device is a Flash memory and SRAM; however, in alternative embodiments, the memory device 22 may include other memory storage devices such as ROM, DRAM, RAM, EPROM, dynamic storage such as other flash memory, energy efficient hard-drive, or the like.
  • the external infusion device 10 is an external infusion pump that is programmed through a keypad 24 on the housing 20 or by commands received from the RF programmer 12 through a transmitter/receiver 26. Feedback from the external infusion device 10 on status or programming changes are displayed on an LCD 28 and/or audibly through a speaker 30.
  • the keypad 24 may be omitted and the LCD 28 may be used as a touch screen input device or the keypad 24 may utilize more keys or different key arrangements then those illustrated in the figures.
  • the processor (controller) 18 is also coupled to a drive mechanism 32 that is connected to a fluid reservoir 34 containing fluid that is expelled through an outlet 36 in the reservoir 34 and housing 20, and then into a body of a user through tubing and a set 38.
  • the keypad 24, LCD 20, speaker 24 may be omitted from the external infusion device, and all programming and data transfer is handled through the RF programmer 12.
  • the external infusion device 10 is an external insulin pump having the capability to deliver 0 to 35 Units/hour in basal rates and up to 25.0 Units per meal bolus of U-100 Insulin.
  • the external pump delivers other concentrations of insulin, or other fluids, and may use other limits on the delivery rate.
  • the user uses the keypad 24 and keys 108, 110, 112 and/or 114 to can program and/or deliver one or more bolus types through a single touch key or by the use of one or more menus.
  • the user can program and/or deliver a bolus with the optional RF programmer 12.
  • the infusion system infuses a fluid, such as medication, chemicals, enzymes, antigens, hormones, vitamins or the like, into a body of a user.
  • the infusion system is an external infusion pump, which includes an RF programming capability, a carbohydrate (or bolus) estimation capability and/or vibration alarm capability.
  • RF programming capability a radio frequency (RF) programming capability
  • carbohydrate (or bolus) estimation capability a carbohydrate (or bolus) estimation capability
  • vibration alarm capability Particular embodiments are directed towards use in humans; however, in alternative embodiments, the external infusion devices may be used in animals.
  • the sensor included in the infusion system may be implanted in and/or through subcutaneous, dermal, sub-dermal, inter-peritoneal or peritoneal tissue.
  • the sensor and monitor are for determining glucose levels in the blood and/or body fluids of the user without the use of, or necessity of, a wire or cable connection between the transmitter and the monitor.
  • further embodiments of the invention may be used to determine the levels of other agents, characteristics or compositions, such as hormones, cholesterol, medication concentrations, pH, oxygen saturation, viral loads (e.g., HIV), or the like.
  • the senor may also include the capability to be programmed or calibrated using data received by a telemetered characteristic monitor transmitter device, or may be calibrated at the monitor device (or receiver).
  • the telemetered characteristic monitor system is primarily adapted for use in subcutaneous human tissue. However, still further embodiments may be placed in other types of tissue, such as muscle, lymph, organ tissue, veins, arteries or the like, and used in animal tissue. Embodiments may provide sensor readings on an intermittent or continuous basis.
  • bolus estimation algorithms render bolus recommendations based upon various parameters including, but not limited to meal content, blood glucose concentrations, blood glucose concentration time rate of change, insulin-on-board, insulin duration factor, target blood glucose, insulin sensitivity and the like.
  • these various parameters may be inputted by the patient, automatically provided to the processor (controller) by a sensor, downloaded from a remote computer, or the like.
  • a bolus estimation algorithm renders bolus recommendations based upon meal content (user input), blood glucose concentration BG (user or meter input), and blood glucose concentration time rate of change (derived from data furnished by a continuous glucose monitoring system).
  • the meal content may be calculated by the patient and inputted directly into the infusion device.
  • the meal content may be downloaded from a remote computer containing a food library or the like.
  • the patient's blood glucose concentration may be directly inputted to the processor (controller) by a glucose meter with or without patient interaction.
  • the patient's BG concentration rate of change may be received by the processor (controller) directly from an external and/or implantable continuous glucose monitoring system of the type described in U.S.
  • the infusion device may be capable of receiving data from various linked devices including, but not limited to a continuous glucose monitoring system, a glucose meter, a remote computer, and the like.
  • the infusion device may receive data in five-minute intervals from any one or more of the linked devices.
  • the receive-time may range from 1 to 10 minutes.
  • data maybe received in 20, 30, 40, 50 or 60 minute intervals.
  • a derivative predicted algorithm is utilized by the infusion device to compute proportional blood glucose correction when measured blood glucose values are outside of a patient's target range.
  • the derivative predicted algorithm may also make correction adjustments for insulin-on-board values and/or compute food corrections.
  • the derivative predicted algorithm utilizes BG information gathered from the patient, glucose monitor, glucose meter, continuous glucose monitoring system or the like.
  • the processor (controller) employing the derivative predicted algorithm receives data from a continuous and/or near continuous glucose monitoring system where measurements are taken over a specified period of time.
  • sensor-derived blood glucose levels are based on trends yielding a prediction of blood glucose levels at a given number of minutes into the future.
  • the future BG values are obtained (and/or predicted) by using the derivative of the current BG value as described by the derivative predicted algorithm.
  • these blood glucose levels are termed "derivative corrected” blood glucose levels.
  • various algorithms may be employed utilizing patient-defined parameters, sensor readings, infusion device defined parameters, and the like. In particular embodiments, certain algorithms accept continuous glucose sensor input and use the blood glucose data to make correction adjustments based upon the derivative of sensor derived blood glucose values.
  • various parameters may be used by the algorithm to calculate the derivative predicted BG values.
  • the algorithm may utilize parameters inputted by the patient and/or default parameters stored in the processor (controller).
  • Patient defined parameters may include, but are not limited to, current blood glucose concentrations (BG), meal carbohydrate content (CHO), sensor current sample at time period n (Isig(n)) (obtained from a continuous glucose sensor), system calibration factor (CF) (obtained from a continuous glucose monitoring system), insulin-on-board at time period n (IOB(n)) and the like.
  • IOB(n) is a state variable maintained by the processor (controller) of the infusion device. In some embodiments, this value may also be referred to as active insulin, or Ia(n).
  • additional parameters may be inputted to the infusion device by the patient including insulin sensitivity, insulin duration factor and the like. In still further embodiments, fewer parameters may be utilized.
  • default parameters stored in the infusion device may include, but are not limited to, maximum (high) BG value of the patient's target range (BGh), minimum (low) BG value of the patient's target range (BGl), sensor glucose rate factor (Td), insulin sensitivity factor (ISF), carbohydrate sensitivity factor (CSF) and the like.
  • these values may be preset in the infusion device and not user adjustable.
  • the patient may adjust BGh, BGl, ISF, and/or CSF.
  • the sensor glucose rate factor Td is not user adjustable. A nominal value of 15 minutes may be factory preset.
  • the doctor, healthcare professional and/or patient may toggle Td between its nominal value and 0.
  • the derivate predicted algorithm may output variables including a total correction recommended value (Tc), and/or a proportional correction portion of the total correction recommendation (Pc).
  • Tc total correction recommended value
  • Pc proportional correction portion of the total correction recommendation
  • the total correction recommended Tc is the amount reported to the patient as the bolus recommendation.
  • the proportional correction portion is equal to Tc minus the food correction.
  • Pc will not be reported to the patient.
  • Pc may be used in additional algorithms employed by the infusion device for delivering a particular type of bolus (i.e., dual wave bolus algorithm, square wave bolus algorithm, presentation of details algorithm, and the like).
  • the derivative predicted algorithm may calculate the first derivative of the sensor current sample at time period n (dIsig(n)).
  • the first derivative dIsig(n) may be calculated from the slope of Isig(n) versus time over the previous 30 minutes using a Savitzky-Golay finite impulse response filter.
  • Table A Order 7 Savitzky-Golay derivative filter coefficients for 5 minute sampling frequency a 0 a 1 a 2 a 3 a 4 a 5 a 6 3/140 2/140 1/140 0 -1/140 -2/140 -3/140
  • Missing samples, whether unavailable due to transmission errors or discarded by sensor system integrity checks may be replaced with the preceding value.
  • the Isig (n-1) through Isig (n-6) will be replaced with Isig(n) (i.e., filter initialization).
  • BGc BG + Td ⁇ dSG n
  • BGc describes the predicted BG value a specific amount of time into the future.
  • the derivative predicted algorithm may be disabled and correction insulin may be determined based on traditional algorithms employed by infusion device systems where BGc would simply equal BG. Additionally, if the derivative of sensor glucose, or dSG is zero, the algorithm reverts back to a more traditional correction algorithm employed by infusion devices as described in U.S. Patent No. 6,554,798 issued on April 29, 2003 to Mann et al. , and entitled "External Infusion Device with Remote Programming, Bolus Estimator and/or Vibration Alarm Capabilities.”
  • the proportional correction (Pc), may be calculated using the following equations:
  • low BG proportional correction will always be negative and is never adjusted with insulin on board.
  • Pc will equal to zero when BG is not entered or when BGc is within the patient's target range as defined by the infusion device.
  • the final corrections returned by the algorithm are Tc and Pc.
  • the negative amount from a low BG proportional correction of sufficiently great magnitude may completely cancel out the positive amount from a food correction.
  • the derivative predicted algorithm always returns non-negative values for Tc and Pc, imposing a floor of zero for each.
  • FIGS. 1-6 3-dimensional figures are used to evaluate performance of the derivative predicted algorithm versus that of a traditional infusion device.
  • the x-y plane of the plots denotes the values of the variables BG and CHO furnished to each algorithm.
  • the z-axis denotes the total insulin bolus correction (Tc) recommended by each algorithm.
  • Tc total insulin bolus correction
  • the height of the vertical column is equal to the bolus recommendation corresponding to those values of BG and CHO.
  • the vertical columns of the plot define the recommendation envelope for the algorithm of interest.
  • BG and CHO are varied within each plot, but all other parameters remain constant.
  • FIGS. 1-6 compare traditional infusion device algorithms with embodiments of the present invention utilizing derivative predicted algorithms. They include three plots having the first plot show the recommendation envelope of a traditional infusion device using traditional infusion delivery algorithms. The second plot within each figure shows the recommendation envelope of an infusion device utilizing derivative predicted algorithms. And the final plot of each figure shows the difference between the two algorithms at every point on their recommendation envelopes.
  • temporal discontinuities occur when, for example, the bolus estimator is given the current BG and CHO content of half the meal just ingested, but one minute later (or some other short and/or insignificant amount of time) the estimate is given the current BG (no change) and the CHO content of half the meal ingested one minute ago.
  • the sum of the two resulting estimates should equal the estimate yielded when the full CHO content of the meal is provided at once.
  • embodiments of the derivative predicted algorithm may produce different results when splitting the meal bolus versus providing the entire bolus at once.
  • FIGS. 7-14 show recommendation envelopes consisting of four plots. The upper two plots show the recommendation envelope for each half of the split meal bolus.
  • FIGS. 7-10 compare derivative predicted algorithms to traditional infusion device algorithms with IOB equal to 0.
  • FIG. 7 shows plots yielded by an infusion device utilizing traditional algorithms with IOB equal to 0.
  • FIGS. 8-10 show the results of an infusion device utilizing the derivative predicted algorithm discussed above with IOB equal to 0 but with varying values of dSG (0, -2, and +2).
  • FIGS. 11-14 make the same comparisons but with IOB equal to 2 U.
  • the derivative predicted algorithm when the derivative is positive, acts more aggressively, in some embodiments, recommending more insulin than traditional infusion device. In further embodiments, when the derivative is negative, the derivative predicted algorithm may act more conservatively, recommending less insulin than traditional infusion devices. In some embodiments, the derivative predicted algorithm exhibits a split bolus discontinuity in the lower BG range. The effect of the derivative in these embodiments may cause the discontinuity to become more pronounced with negative derivatives and less pronounced with positive derivatives. In some embodiments, the derivative predicted algorithm reacts more quickly to changes in BG, reducing the recommendation sooner for falling BG and increasing it sooner for rising BG, offering improved control of BG.
  • the patient may receive the infusion device pre-programmed with traditional algorithms and/or derivative predicted algorithms. The patient may then decide which algorithm to run based on the patient's grasp of BG control and healthcare provider recommendations.
  • the infusion device may include only the derivative predicted algorithm.
  • the derivative predicted algorithm acts more aggressively than traditional correction algorithms employed by current infusion devices.
  • the derivative predicted algorithm may recommend more insulin when the derivative of SG is positive.
  • the algorithm acts more conservatively, recommending less insulin.
  • the infusion device system may employ various bolus delivery algorithms.
  • the device may allow the patient to select from three separate delivery algorithms based on patient and/or healthcare professional preference.
  • the first algorithm may utilize traditional methods found in current infusion device systems of the type described in U.S. Pat. No. 6,554,798 entitled "External Infusion Device with Remote Programming, Bolus Estimator and/or Vibration Alarm Capabilities.”
  • the second option allows the patient to utilize the traditional algorithm plus a modification of insulin intake using a glucose trend.
  • This option allows the fine-tuning of the traditional algorithm by examining the trend of sensor derived blood glucose values as described by the algorithms explanation above.
  • the recommended insulin intake would be less if, in general, BG values were trending down. In other embodiments, the recommended insulin intake would be more if BG values were trending up.
  • the patient may be required to check the glucose sensor values by administering a finger-stick value. In these instances, SG may not be utilized if it is significantly different from the finger-stick value.
  • the difference may be a predetermined range based on percentage in the glucose readings.
  • the third option allows use of the sensor glucose values to replace the finger stick values in the second option. If a finger stick value was obtained within the last 12 minutes, the algorithm reverts to the second option. If not, the screen of the infusion device will show the present current sensor value. Upon user acknowledgement the bolus estimation will use the sensor value for bolus estimation, effectively replacing the finger stick value in the second option. Finally, the infusion device may display dashes, stars and the like to notify the patient that neither the BG value nor the current sensor value is available to be inputted.
  • Embodiments of the semi-closed loop infusion system may also provide alarm-based capabilities.
  • the system performs delivery dosage recommendations autonomously every five minutes. This amount of time may be hard coded into the system so the patient cannot manipulate it; or it may be programmable to change the time between recommendation cycles. Additional embodiments allow the patient to set the amount of time between system recommendations. If the recommendation amounts are within the patient-defined fluid-based thresholds, the system will not display recommended dosages or require the patient to verify that the dosage is sufficient-the processor (controller) will direct the infusion system to deliver the recommended amounts.
  • embodiments of the system allow the processor (controller) to recommend and/or deliver fluids to the body of the patient, without patient interaction, until the recommendation protocol exceeds or falls below patient-defined thresholds.
  • System advantages may include, for example, simulating the body's natural insulin response to blood glucose levels for diabetic patients.
  • input and interaction with an infusion device may only be required when the recommended insulin dosage amount exceeds or falls below predefined thresholds pre-programmed on the device.
  • the patient may turn this feature on or off based on the projected usage.
  • this feature may be disabled or enabled directly from the factory.
  • the patient may program multiple sets of high/low thresholds based on time. This feature allows the patient to determine what thresholds may be required for a particular time of day. In the case of diabetic patients, tighter thresholds may be used during nighttime sleep hours to avoid dramatic drops in blood glucose levels. In further embodiments, thresholds may be set for different days of the week, activity levels, meals, health conditions, or the like.
  • the alarms of the present embodiment include, but are not limited to audible alarms, vibration alarms, visual alarms, and the like. Additional embodiments may include one type of alarm or a combination of various alarms. Further embodiments may allow the patient to configure which type of alarm is used. For example, these embodiments would allow the patient to set a particular type of alarm for an excessive recommendation and a different alarm for a recommendation that falls below the threshold. Alternatively, all alarms may be set the same. The patient may also program the intensity of the alarms. Audible alarms may have the capability to increase and/or decrease in volume, change tones, provide melodies, and the like. Vibration alarms may change in intensity and/or pulse to provide tactile alerts.
  • Visual alarms may come in many forms including, but not limited to, flashing LCD backlights, flashing LEDs, and the like. Examples of alarms are shown in U.S. Pat. No. 6,554,798 entitled “External Infusion Device with Remote Programming, Bolus Estimator and/or Vibration Alarm Capabilities," and published U.S. Patent Application US 2003/0060765 entitled “Infusion Device Menu Structure and Method of Using the Same.”
  • the semi-closed loop infusion system can shut-off infusion based on sensor-detected readings and/or sensor-derived trends. For example, in an insulin based infusion system for a diabetic patient, if the sensor detects a low blood glucose level (i.e. hypoglycemia) over a designated period of sensor readings, the infusion device may stop insulin delivery entirely and alert the patient by going into a normal suspend mode. If a low blood glucose level is verified over a period of time, the patient needs to be alerted because it has the potential of causing severe health consequences and continued insulin delivery may make the low blood glucose level worse. Immediate delivery of glucose, not insulin, would be required. In other embodiments, only a portion of insulin delivery may be suspended.
  • a low blood glucose level i.e. hypoglycemia
  • multiple delivery profiles may be activated or suspended based on sensor derived readings, patient input, derivative predicted readings and the like. Activations and suspension of multiple delivery profiles are more fully described in published U.S. Patent Application US 2003/0114836 entitled “Medication Delivery System and Monitor.”
  • Further embodiments may use predicted sensor readings to determine if low blood glucose levels (i.e. hypoglycemia) will be present a specified amount of time in the future.
  • sensor-derived trends are utilized to determine low blood glucose levels occurring in the future.
  • the sensor-derived trends may be obtained by utilizing the derivative predicted algorithm described above.
  • the processor (controller) of the infusion device may use current sensor readings to predict sensor readings that will occur a certain amount of time in the future, i.e., fifteen minutes-thus yielding a derivative corrected blood glucose reading. Using this technique, if a predicted sensor-derived blood glucose level falls below a low-shutoff threshold, the infusion device will go into a suspend mode.
  • this suspend mode may provide alerts to the patient.
  • This algorithm may also allow the patient to be aware of predicted low blood glucose levels before they actually occur. The patient will have more time to implement required corrective action. In alternative embodiments, longer times, such as thirty minutes, one hour, several hours, or days, and/or shorter times, such as one minute, five minutes, 10 minutes, or the like may be used with the time set to meet the patient's particular needs and provide safety.
  • the semi-closed loop infusion system may resume fluid delivery based on sensor-detected readings and/or sensor-derived trends.
  • the infusion device may recommend resumption of insulin delivery based on current sensor readings yielding blood glucose levels that are found in an acceptable range. An alert may be provided to the patient upon determination of these readings.
  • the device may re-start when the patient accepts the recommendation.
  • the device's re-start recommendation may be based on sensor-derived blood glucose readings obtained from the processor (controller) utilizing the derivative predicted algorithm.
  • the processor may recommend resumption of fluid delivery, i.e. basal delivery.
  • the resumption may occur automatically upon the sensor-detected readings and/or sensor-derived trends reaching certain values determined to meet patient needs and safety.
  • the device may query the patient to initiate re-start of the device.
  • the sensor-detected readings and/or sensor-derived trends may be uploaded to a remote computer monitored by a healthcare specialist who may then assist the patient in determining if re-start of the device is necessary.
  • the shut-off and resuming capabilities may be based on current sensor readings and/or sensor-derived trends. In other embodiments, the shut-off and resuming capabilities may be based on additional factors including, but not limited to, insulin-on-board, insulin sensitivity, insulin duration factor, and the like.
  • the patient may select to turn off the sensor-derived readings capability and only use the actual sensor data. In other embodiments, the patient may use a combination of sensor readings and sensor-derived trends.
  • the infusion device may come pre-programmed with the ability to carry out one or the other, preventing selection by the patient entirely; this would be a lockout feature useful for doctors and/or parents with patients requiring limited access to the system.
  • the infusion system may include a safety mechanism in which the system will not allow the patient-defined low target range to be set lower than the system's low shutoff threshold. Additional safety mechanisms may be included in further embodiments including, but not limited to, limitations on the patient-defined threshold amounts, key-guards to prevent inadvertent suspension or activation of the infusion device and the like. Other embodiments include safety limits that set a maximum amount of recommended delivery dosages that can be taken on an hourly basis.
  • the recommended insulin intake options provided by the processor may use a combination of current sensor readings along with examination of sensor-derived trends. Additional embodiments may include the use of blood glucose meters with in vitro test strip readings to provide more precise recommendations based on current sensor readings. If sensor readings are lost or not properly received by the infusion system, the patient may have the capability to manually enter in current blood glucose levels determined from in vitro test strip measurements. In other embodiments, in vitro test strip measurements may be automatically provided to the infusion device. In still even further embodiments, the infusion system may combine all of the previous elements and allow the patient to determine which combination of elements to base the recommended dosage on. In other embodiments, changes and modifications of the recommendation protocol may only be made by physicians, therapists, or directly from the factory based on specific patient requirements.
  • the embodiments of the glucose sensor system include a glucose sensor, sensor electrical components to provide power to the sensor and generate the sensor signal, a sensor communication system to carry the sensor signal to the processor (controller), and a sensor system housing for the electrical components and the sensor communication system.
  • the glucose sensor system is of the type described in U.S. Pat. No. 6,809,653 entitled "Telemetered Characteristic Monitor System And Method Of Using The Same.”
  • processor controller electrical components and software to generate commands for the insulin delivery system based on the sensor signal, and a controller communication system to receive the sensor signal and carry commands to the insulin delivery system.
  • processor controller
  • the processor is of the type described in U.S. Pat. No. 6,554,798 entitled “External Infusion Device with Remote Programming, Bolus Estimator and/or Vibration Alarm Capabilities," and U.S. Pat. No. 5,665,065 entitled “Medication Infusion Device With Blood Glucose Data Input”.
  • Embodiments of the insulin delivery system include an infusion device and an infusion tube to infuse insulin into the body of the patient.
  • the infusion device includes infusion electrical components to activate an infusion motor according to the commands, an infusion communication system to receive the commands from the processor (controller), and an infusion device housing to hold the infusion device as described in U.S. Pat. No. 6,248,093 entitled “Compact Pump Drive System” and U.S. Pat. No. 6,554,798 entitled "External Infusion Device with Remote Programming, Bolus Estimator and/or Vibration Alarm Capabilities".
  • the processor (controller) is housed in the infusion device housing and the infusion communication system is an electrical trace or a wire that carries the commands from the processor (controller) to the infusion device.
  • the processor (controller) is housed in the sensor system housing and the sensor communication system is an electrical trace or a wire that carries the sensor signal from the sensor electrical components to the processor (controller) electrical components.
  • the processor (controller) has its own housing or is included in a supplemental device.
  • the processor (controller) is located with the infusion device and the sensor system all within one housing.
  • the sensor, processor (controller), and/or infusion communication systems may utilize a cable, a wire, fiber optic lines, RF, IR, or ultrasonic transmitters and receivers, or the like instead of the electrical traces.

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Claims (10)

  1. Système de perfusion pour perfuser de l'insuline dans le corps d'un patient, le système de perfusion comprenant :
    au moins un capteur pour surveiller la concentration de glucose dans le sang (BG) du patient, dans lequel le capteur produit au moins une entrée de signal de capteur (Isig(n)) qui est représentative de la concentration de glucose dans le sang du patient ; et
    un dispositif de perfusion (10) pour administrer de l'insuline au patient, dans lequel le dispositif de perfusion est adapté pour utiliser l'au moins une entrée de signal de capteur (Isig(n)) et
    un algorithme de prédiction par dérivée qui utilise la dérivée de la concentration de glucose dans le sang (BG) détectée pour prédire des niveaux de glucose dans le sang futurs (BGc).
  2. Système selon la revendication 1, dans lequel sont fournis des moyens pour fixer une plage cible de concentration de glucose dans le sang d'un patient, définie entre un seuil supérieur (BGh) et un seuil inférieur (BG1) dans lequel le dispositif de perfusion administre de l'insuline en réponse auxdits niveaux futurs prédits pour maintenir le niveau de glucose dans le sang (BG) dans la plage cible du patient.
  3. Système selon la revendication 2, dans lequel lorsque le niveau futur prédit de la glycémie est au-dessus du seuil supérieur, de l'insuline est administrée sur la base de la différence entre le niveau futur prédit (BGc) et le seuil supérieur (BGh) après la déduction d'une estimation de la quantité d'insuline (IOB(n)) restant dans le corps depuis les perfusions précédentes et l'ajout d'une quelconque quantité (Fc) requise pour un prochain repas, et
    lorsque le niveau futur prédit (BGc) est en dessous du seuil inférieur (BGh), de l'insuline est administrée sur la base de la différence entre le seuil inférieur (BGl) et le niveau de glucose dans le sang futur prédit (BGc), déduit de la quantité requise pour le prochain repas (Fc).
  4. Système selon l'une quelconque des revendications précédentes, dans lequel est fourni un seuil bas de coupure prédéterminé, et le dispositif de perfusion est capable de suspendre l'administration d'insuline si le niveau de glucose dans le sang futur prédit (BGc) tombe en dessous du niveau du seuil bas de coupure.
  5. Système selon la revendication 4, dans lequel le dispositif de perfusion reprend l'administration d'insuline lorsque le niveau de glucose dans le sang prédit (BGc) monte au-dessus du seuil bas de coupure prédéterminé.
  6. Système selon la revendication 4 en ce qu'elle dépend de la revendication 2 ou 3, dans lequel les moyens pour fixer la plage cible du patient fixent toujours le seuil inférieur (BGl) de la plage cible au-dessus du seuil bas de coupure prédéterminé.
  7. Système selon la revendication 1, dans lequel le système de perfusion comprend en outre une alarme pour fournir des alertes au patient.
  8. Système selon la revendication 7, dans lequel le patient sélectionne au moins une alarme (16) à activer,
    dans lequel l'au moins une alarme (16) comprend une alarme audible pour fournir des alertes audibles,
    une alarme de vibration pour fournir des alertes tactiles, et
    une alarme visuelle pour fournir des alertes visuelles.
  9. Procédé d'estimation de l'insuline requise et d'affichage de l'estimation à l'utilisateur, consistant à :
    mesurer une concentration de glucose dans le sang actuelle (BG) au moyen d'un capteur, dans lequel le capteur produit au moins une entrée de signal de capteur (Isig(n)), qui est représentative de la concentration de glucose dans le sang actuelle (BG),
    fournir en entrée l'au moins un signal de capteur (Isig(n)) à un algorithme de prédiction par dérivée, qui utilise la dérivée de la concentration de glucose dans le sang détectée (BG) pour prédire des niveaux de glucose dans le sang futurs (BGc), et
    calculer la quantité d'insuline (Tc) requise pour traiter ledit niveau de glucose dans le sang futur prédit (BGc).
  10. Procédé selon la revendication 9, comprenant en outre :
    le fait d'établir une plage cible de concentration de glucose dans le sang d'un patient définie entre un seuil supérieur (BGh) et un seuil inférieur (BG1),
    dans lequel lorsque le niveau de glucose dans le sang futur prédit (BGc) est au-dessus du seuil supérieur (BGl), l'estimation de l'insuline requise est basée sur la différence entre le niveau futur prédit (BGc) et le seuil supérieur (BGh) après la déduction d'une estimation de la quantité d'insuline (IOB(n)) restant dans le corps depuis les perfusions précédentes et l'ajout d'une quelconque quantité (Fc) requise pour un prochain repas, et
    lorsque le niveau futur prédit (BGc) est en dessous du seuil inférieur (BGh), l'estimation de l'insuline requise est basée sur la différence entre le seuil inférieur (BG1) et le niveau de glucose dans le sang futur prédit (BGc), déduit de la quantité requise pour le prochain repas (Fc).
EP06719947.1A 2005-02-01 2006-01-30 Estimateur de bolus pour systeme de perfusion en boucle semi-fermee Revoked EP1848323B1 (fr)

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US11/322,489 US7547281B2 (en) 2005-02-01 2005-12-30 Algorithm sensor augmented bolus estimator for semi-closed loop infusion system
PCT/US2006/003350 WO2006083831A1 (fr) 2005-02-01 2006-01-30 Estimateur de bolus pour systeme de perfusion en boucle semi-fermee

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US20060173406A1 (en) 2006-08-03
US8226556B2 (en) 2012-07-24
CA2593121C (fr) 2013-01-08
CA2593121A1 (fr) 2006-08-10
EP1848323A1 (fr) 2007-10-31
US9320471B2 (en) 2016-04-26
US20090234213A1 (en) 2009-09-17
US7547281B2 (en) 2009-06-16
WO2006083831A1 (fr) 2006-08-10

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